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I have picked up this example from here which converts BitSet to Byte array.

public static byte[] toByteArray(BitSet bits) {
    byte[] bytes = new byte[bits.length()/8+1];
    for (int i=0; i<bits.length(); i++) {
        if (bits.get(i)) {
            bytes[bytes.length-i/8-1] |= 1<<(i%8);
        }
    }
    return bytes;
}

But in the discussion forums I have seen that by this method we wont get all the bits as we will be loosing one bit per calculation. Is this true? Do we need to modify the above method?

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3 Answers 3

up vote 10 down vote accepted

No, that's fine. The comment on the post was relating to the other piece of code in the post, converting from a byte array to a BitSet. I'd use rather more whitespace, admittedly.

Also this can end up with an array which is longer than it needs to be. The array creation expression could be:

byte[] bytes = new byte[(bits.length() + 7) / 8];

This gives room for as many bits are required, but no more. Basically it's equivalent to "Divide by 8, but always round up."

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1  
thanks for clarifying. –  JavaBits Jun 1 '11 at 8:08

If you need the BitSet in reverse order due to endian issues, change:

bytes[bytes.length-i/8-1] |= 1<<(i%8);

to:

bytes[i/8] |= 1<<(7-i%8);

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This works fine for me. if you are using Java 1.7 then it has the method toByteArray().

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1  
By the way: the official name is "Java 7" (just as it was since Java 5, but Java 5 was still often called Java 1.5. Java 6 was rarely called Java 1.6). –  Joachim Sauer Jun 1 '11 at 7:50
    
@Joachim Sauer, Yeah official name Java 7. I just mention the version. Any way thanks to correct me. –  Kamahire Jun 1 '11 at 7:53
    
Be careful with BitSet.toByteArray() because it may not serialize the bytes in the order you expect. BitSet notEqual = BitSet.valueOf(bitset.toByteArray()); // This doesn't work. –  Ryan Nov 6 '13 at 21:26

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